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Here is the PHP code. What I'm basically trying to do is display a single image from a mySQL database, but for the life of me I can't seem to figure it out.

    <?php
    $port = "****";
    $server = "****".$port;
    $dbname ="****";
     $user = "****";

    $conn = mysql_connect ("$server", "$user", "$pass") or die ("Connection
    Error or Bad Port");

    mysql_select_db($dbname) or die("Missing Database");

    ?>

     <!doctype html public "-//w3c//dtd html 4.0 transitional//en"
     "http://www.w3.org/TR/REC-html40/strict.dtd">
    <html>
    <head>
    <meta http-equiv="Content-Type" content="text/html; charset=iso-8859-1"
    />
     <title>Query 3</title>
     </head>

   <body bgcolor="white">


    <hr>


      <?php
    $speakerPic = $_POST['speakerPic'];
    $query = "SELECT speaker.speaker_picture FROM  Speaker JOIN Contact USING(contact_id) 
    WHERE Contact.lname = ";
    $query = $query."'".$speakerPic."';";
    ?>

        <p>
    The query:
    <p>
    <?php
    print $query;
    ?>

    <hr>
    <p>
     Result of query:
    </p>

     <?php
   $row = mysql_fetch_array($query);
   $content = $row['image'];

   header('Content-type: image/jpg');
         echo $content;
 ?>

 </body>
 </html>

What isn't working here? I really do appreciate your help.

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Obligatory: $speakerPic is open to SQL injection. –  nickb Dec 8 '11 at 13:21
    
Your Doctype is nonsense. You have a transitional public identifier and a strict system identifier. They don't match. Pick a real doctype. –  Quentin Dec 8 '11 at 13:24
    
Further to @nickb's comment: bobby-tables.com –  Quentin Dec 8 '11 at 13:25
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3 Answers

To include an image in an HTML document you use an <img> tag with a src attribute that contains a URI pointing at the image.

That could be an HTTP URI (which could hit a PHP script that gets the image data from a database and returns it) and it could be a DATA URI with the image encoded directly into the page.

The usual approach to dealing with images is to keep them on a filesystem and store URLs (or file paths that URLs can be constructed from) in the database.

You can't just spit out an HTTP response in the middle of another HTTP response as you are trying to do now.

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This is correct. Also, mysql_fetch_array() on an SQL string won't do much, the query should be (prepared and) executed ;) –  Konerak Dec 8 '11 at 13:24
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You need to call mysql_query before you call mysql_fetch_array.

$result = mysql_query( $query);
$row = mysql_fetch_array($result);

Also, you should sanitize $speakerPic like so:

$query = $query."'". mysql_real_escape_string( $speakerPic)."';";
share|improve this answer
    
I added the $result variable, and now when I run it I get this following error code, when I run the query from the html page itself. The image "http://......./query2.php" cannot be displayed because it contains errors. –  user1087799 Dec 8 '11 at 21:01
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you have no row called "image", try re-naming your row in your query like this:

SELECT speaker.speaker_picture AS image FROM ...
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